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Flexible Mid-infrared Photonic Circuits for Real-time and Label-Free Hydroxyl Compound Detection

机译:灵活的中红外光子电路用于实时和无标记的羟基化合物检测

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摘要

Chip-scale chemical detections were demonstrated by mid-Infrared (mid-IR) integrated optics made by aluminum nitride (AlN) waveguides on flexible borosilicate templates. The AlN film was deposited using sputtering at room temperature, and it exhibited a broad infrared transmittance up to λ = 9 µm. The AlN waveguide profile was created by microelectronic fabrication processes. The sensor is bendable because it has a thickness less than 30 µm that significantly decreases the strain. A bright fundamental mode was obtained at λ = 2.50–2.65 µm without mode distortion or scattering observed. By spectrum scanning at the -OH absorption band, the waveguide sensor was able to identify different hydroxyl compounds, such as water, methanol, and ethanol, and the concentrations of their mixtures. Real-time methanol monitoring was achieved by reading the intensity change of the waveguide mode at λ = 2.65 μm, which overlap with the stretch absorption of the hydroxyl bond. Due to the advantages of mechanical flexibility and broad mid-IR transparency, the AlN chemical sensor will enable microphotonic devices for wearables and remote biomedical and environmental detection.
机译:通过在柔性硼硅酸盐模板上使用氮化铝(AlN)波导制成的中红外(mid-IR)集成光学器件,证明了芯片级化学检测。在室温下通过溅射沉积AlN膜,并且其显示出高达λexhibit = broad9μm的宽红外透射率。通过微电子制造工艺来创建AlN波导轮廓。该传感器是可弯曲的,因为它的厚度小于30μm,可显着减小应变。在λ= 2.50–2.65 µm时获得了明亮的基本模,而没有观察到模失真或散射。通过在-OH吸收带进行光谱扫描,波导传感器能够识别不同的羟基化合物(例如水,甲醇和乙醇)及其混合物的浓度。实时甲醇监测是通过读取波导模式在λ= 2.65μm处的强度变化来实现的,该强度变化与羟基键的拉伸吸收重叠。由于机械灵活性和广泛的中红外透明度的优势,AlN化学传感器将使微光子设备可穿戴设备以及远程生物医学和环境检测成为可能。

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